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Automated extraction of local defect resonance using the principal component analysis in lock-in ultrasonic vibrothermography

机译:利用锁定超声波振动术中的主成分分析自动提取局部缺陷共振

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摘要

Ultrasonic vibrothermography is an emerging and promising nondestructive evaluation technique used for detection of surface and sub-surface defects. The heat-generating sources such as friction of the surface asperities of the defect and viscoelastic behavior of the structure may cause variations in non-linear elastic energy leading to the rise of temperature of the damaged area. In this paper, a Flat-Bottomed Hole (FBH) defect is modeled by finite element method in a polymethylmethacrylate (PMMA) structure. The desired information from this defect is retrieved by its local defect resonance (LDR) frequency which is estimated through a Principal Component Analysis (PCA). It is shown that the PCA algorithm can extract the LDR frequency of the FBH with high accuracy. The sample is then excited by a sine wave at its LDR frequency modulated by a low frequency corresponding to the thermal penetration depth. The lock-in amplitude and phase images are also generated at different modulation frequencies in order to find the optimal frequency in terms of contrast enhancement. The results of the finite element model are then verified by comparison with published experimental results and are found to be in very good agreement.
机译:超声波vibrothotmography是一种用于检测表面和亚表面缺陷的新兴和有前途的非破坏性评估技术。诸如结构的缺陷和粘弹性行为的表面粗糙的发热源,例如结构的粘弹性行为可能导致非线性弹性能量的变化,导致受损区域的温度的升高。在本文中,通过在聚甲基丙烯酸甲酯(PMMA)结构中的有限元法建模平底孔(FBH)缺陷。通过其本地缺陷共振(LDR)频率检索来自该缺陷的所需信息,该频率通过主成分分析(PCA)估计。结果表明,PCA算法可以高精度地提取FBH的LDR频率。然后,通过与热穿透深度对应的低频调制的LDR频率的正弦波激发样品。在不同的调制频率下也产生锁定幅度和相位图像,以便在对比度增强方面找到最佳频率。然后通过与已发表的实验结果进行比较来验证有限元模型的结果,并发现非常良好的一致性。

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